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In PHP, it seems like every object can be converted to an integer, just by calling intval($object), but this is not what I want. What I want is, to check if the object would be valid to be converted into an integer for what a human thinks it is.

I.e., valid objects would be

  • 12
  • 12.0
  • "12"
  • "12.0"

And not valid would be

  • MyFooInstance()
  • "some string"
  • "12.0.0"
  • "0 12.0"

etc. In python, I could simply to the following:

except (TypeError, ValueError):
    return False
return True

How can I achive this in PHP?

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Go with Dogbert and refer Gordon – OM The Eternity Mar 5 '12 at 11:22

5 Answers 5

up vote 5 down vote accepted

Use is_numeric.

$tests = array(
    "not numeric", 

foreach ($tests as $element) {
    if (is_numeric($element)) {
        echo "'{$element}' is numeric", PHP_EOL;
    } else {
        echo "'{$element}' is NOT numeric", PHP_EOL;

'42' is numeric
'1337' is numeric
'1e4' is numeric
'not numeric' is NOT numeric
'Array' is NOT numeric
'9.1' is numeric

(From the page)

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Thank you, must have missed that! – Niklas R Mar 5 '12 at 12:24

See PHP's ctype_digit().

This function evaluates a string to see if all character are numeric. Thus "1.1" will not return true because "." is not numeric, but "11" will. Also note this works for strings only, so numbers without the surrounding quotation marks will also not work.

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Integer (not just numeric) test:

function is_integerable( $v ){
  return is_numeric($v) && $v*1 == (int)($v*1);


$str => is_integerable($str)
'-1'    => true
'-1.00' => true
'-1.11' => false
'1e4'   => true
'1e40'  => false


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Thank you ver much, but is_numeric fits too. :) – Niklas R Mar 5 '12 at 12:23

try this

if((int)$variable) {...
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The condition in if( (int)$variable ) would evaluate to false when $variable == 0. – Niklas R Mar 5 '12 at 11:20
yep, forgot that "little" detail :) – Flakron Bytyqi Mar 5 '12 at 11:23

check out is_numeric($var):

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